The present invention relates to a rigid connection structure between an upper precast concrete column and a lower precast concrete column and a rigid connection structure of a precast concrete beam using the same that improve a column-column connection and a column-beam connection, while performing moment connection, that is, rigid connection, in a dry construction method, thereby enhancing the constructability thereof to allow the rigid connection to be achieved only by the connection of reinforcing bars before concrete is cast on the connections.
So as to ensure good constructability and reduce a construction period, recently, a precast concrete (hereinafter, referred to as “PC”) method has been increasingly adopted.
Examples of the conventional PC method include a method for simply mounting a PC beam onto a PC column and a method for unitarily casting a PC column and a PC beam.
The method for simply mounting the PC beam onto the PC column is one of methods widely used currently, which is capable of somewhat reducing the construction period, but since a column and beam connection in the method is made through simple jointing, a moment cannot be transferred in this method when a lateral force like an earthquake is applied. Accordingly, lateral force reinforcing means like shear walls, braces and so on should be additionally located, thereby failing to provide the advantages of the PC method planned for reducing the construction period and unavoidably increasing construction cost and period.
When the PC beam is simply mounted on the PC column, further, the escape of the column-beam connection may be generated to cause safety accidents. Accordingly, the structural instability in the column-beam connection may be undesirably generated, so that the method for simply mounting the PC beam onto the PC column is limited in the use in high-rise buildings.
In case of the method for unitarily casting the PC column and the PC beam, concrete is cast on a column-beam connection, so that the construction period may be delayed by concrete curing and the structural instability in the column-beam connection may be caused during the concrete curing, thereby being limited in the use in high-rise buildings.
So as to solve the above-mentioned disadvantages of the conventional PC method, recently, many studies on a PC method with moment connection have been made, but such PC method has complicated construction details, a low economic efficiency, and bad constructability, so that it is really hard to apply the PC method to high-rise buildings.
Accordingly, the inventor has proposed a moment resisting frame in a dry construction method, while removing the installation of additional lateral force reinforcing means such as shear walls (forms and wet construction method), braces and so on.
The present invention relates to a rigid connection structure between an upper PC column and a lower PC column and a rigid connection structure of a PC beam using the same wherein precast frame construction can be performed, thereby achieving the construction period and constructability similar to those required in steel frame construction, and only if even unskilled workers know a manual, safe and rapid construction can be ensured.
Accordingly, the present invention has been made in view of the above-mentioned problems occurring in the prior art, and it is an object of the present invention to provide to a rigid connection structure between an upper PC column and a lower PC column and a rigid connection structure of a PC beam using the same that improve a column-column connection and a column-beam connection, while performing moment connection, that is, rigid connection, in a dry construction method, thereby enhancing the constructability thereof to allow the rigid connection to be achieved only by the connection of reinforcing bars before concrete is cast on the connections.
To accomplish the above-mentioned object, according to a first aspect of the present invention, there is provided a rigid connection structure between an upper PC column and a lower PC column, including: the lower PC column having lower column concrete, a lower column plate disposed on top of the lower column concrete, and a plurality of lower column reinforcing bars buriedly arranged vertically in the interior of the lower column concrete to maintain the cover thickness of concrete and having upper ends penetrated into the lower column plate in such a manner as to be exposed to the outside; and the upper PC column having upper column concrete, an upper column plate disposed on top of the upper column concrete, and a plurality of upper column reinforcing bars buriedly arranged vertically in the interior of the upper column concrete to maintain the cover thickness of concrete and having lower ends penetrated into the upper column plate in such a manner as to be exposed to the outside, wherein the upper column concrete on a portion where the upper column reinforcing bars are exposed forms a box out, without having any contact with the upper column plate, and if the upper ends of the lower column reinforcing bars are penetrated into the upper column plate and are exposed to the outside, the upper column reinforcing bars and the lower column reinforcing bars are connected to each other in the box out.
To accomplish the above-mentioned object, according to a second aspect of the present invention, there is provided a rigid connection structure between an upper PC column and a lower PC column, including: the lower PC column having lower column concrete, a lower column plate disposed on top of the lower column concrete, and a plurality of lower column reinforcing bars buriedly arranged vertically in the interior of the lower column concrete to maintain the cover thickness of concrete and having upper ends penetrated into the lower column plate in such a manner as to be exposed to the outside; and the upper PC column having upper column concrete, an upper column plate disposed on top of the upper column concrete, and a plurality of upper column reinforcing bars buriedly arranged vertically in the interior of the upper column concrete to maintain the cover thickness of concrete and having lower ends penetrated into the upper column plate in such a manner as to be exposed to the outside, wherein the upper column concrete on a portion where the upper column reinforcing bars are exposed forms a box out, the lengths of the sides of the upper column plate are shorter than the lengths of the sides of the lower column plate, and the upper column plate and the lower column plate are coupled to each other by means of internal bolts, so that if the upper ends of the lower column reinforcing bars are penetrated into the lower column plate and then exposed to the outside, the upper column reinforcing bars and the lower column reinforcing bars are connected to each other in the box out.
The above and other objects, features and advantages of the present invention will be apparent from the following detailed description of the preferred embodiments of the invention in conjunction with the accompanying drawings, in which:
Hereinafter, an explanation on a rigid connection structure between an upper PC column and a lower PC column and a rigid connection structure of a PC beam using the same according to the present invention will be in detail given with reference to the attached drawing.
I. Rigid Connection Structure Between an Upper PC Column and a Lower PC Column and Rigid Connection Structure of a PC Beam Using the Same
A rigid connection structure between an upper PC column 100 and a lower PC column 200 according to a first embodiment of the present invention includes: the lower PC column 200 having column concrete 230, a lower column plate 270 disposed on top of the column concrete 230, and a plurality of lower column reinforcing bars 210 buriedly arranged vertically in the interior of the column concrete 230 to maintain the cover thickness of concrete and having upper ends penetrated into the lower column plate 270 in such a manner as to be exposed to the outside; and the upper PC column 100 having column concrete 130, an upper column plate 170 disposed on top of the column concrete 130, and a plurality of upper column reinforcing bars 110 buriedly arranged vertically in the interior of the column concrete 230 to maintain the cover thickness of concrete and having lower ends penetrated into the upper column plate 170 in such a manner as to be exposed to the outside, wherein the column concrete 130 on a portion where the upper column reinforcing bars 110 are exposed forms a box out 150, without having any contact with the upper column plate 170, and if the upper ends of the lower column reinforcing bars 210 are penetrated into the upper column plate 170 and are exposed to the outside, the upper column reinforcing bars 110 and the lower column reinforcing bars 210 are connected to each other in the box out 150.
Further, as shown in
(a) and (b) of
According to the present invention, as shown in
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(a) and (b) of
As shown in (a) and (b) of
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Referring analogically to the PC beam of
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Further, the lower ends of the upper column reinforcing bars 110 are coupled to the upper ends of one touch couplers OC, and the upper ends of the lower column reinforcing bars 210 are coupled to the lower ends of the one touch couplers OC, so that the upper column reinforcing bars 110 and the lower column reinforcing bars 210 are connected to each other.
Referring analogically to
According to the second embodiment of the present invention, a rigid connection structure of a PC beam 300 using the rigid connection structure between the upper PC column 100 and the lower PC column 200 includes: the PC beam 300 having beam concrete 330, a beam plate 370 disposed on the side of the beam concrete 330, and a plurality of beam reinforcing bars 310 buriedly arranged vertically in the interior of the beam concrete 330 to maintain the cover thickness of concrete and each having one end connected to the beam plate 370; beam upper reinforcing bars 410 arranged horizontally above the PC beam 300; and slab concrete 430 adapted to be cast on the beam upper reinforcing bars 410 to bury the beam upper reinforcing bars 410 thereinto, wherein the beam plate 370 is coupled to the side of the column concrete 230 of the lower PC column 200, and one end of each beam upper reinforcing bar 410 passes through the box out 150 and is then coupled to the side of the column concrete 130.
Further, when the beam upper reinforcing bars 410 are coupled to the side of the column concrete 130, the column concrete 130 has connection reinforcing bars 410′ in advance buried thereinto in such a manner as to be coupled to couplers, so that the beam upper reinforcing bars 410 are coupled to the couplers coupled to the connection reinforcing bars 410′.
According to the second embodiment of the present invention, a level down portion 350 is formed on the upper end of the beam concrete 350 coming into contact with the beam plate 370, so that the upper end of the beam plate 370 is exposed to form an exposed upper plate 372, and the lower end of the beam plate 370 is extended downwardly from the lower end of the beam concrete 330 to form an exposed lower plate 376, so that the exposed upper plate 372 and the exposed lower plate 376 are coupled to the column concrete 230 by means of bolts.
Referring analogically to
Referring analogically to
Referring analogically to
Moreover, a beam lower reinforcing bar 320 protrudes from the side of the lower portion of the beam concrete 330 in such a manner as to be connected to a connection reinforcing bar 320′ disposed on the side of the lower PC column 200, and the connection reinforcing bar 320′ has one end coupled to the side of the column concrete 230 by means of a buried coupler C′ and the other end coupled to the beam lower reinforcing bar 320 by means of a coupler C.
II. Rigid Connection Structure Between an Upper PC Column and a Lower PC Column and Rigid Connection Structure of a PC Beam Using the Same
A rigid connection structure between an upper PC column 100 and a lower PC column 200 according to a third embodiment of the present invention includes: the lower PC column 200 having column concrete 230, a lower column plate 270 disposed on top of the column concrete 230, and a plurality of lower column reinforcing bars 210 buriedly arranged vertically in the interior of the column concrete 230 to maintain the cover thickness of concrete and having upper ends penetrated into the lower column plate 270 in such a manner as to be exposed to the outside; and the upper PC column 100 having column concrete 130, an upper column plate 170 disposed on top of the column concrete 130, and a plurality of upper column reinforcing bars 110 buriedly arranged vertically in the interior of the column concrete 230 to maintain the cover thickness of concrete and having lower ends penetrated into the upper column plate 170 in such a manner as to be exposed to the outside, wherein the column concrete 130 on a portion where the upper column reinforcing bars 110 are exposed forms a box out 150′, without having any contact with the upper column plate 170, and if the upper ends of the lower column reinforcing bars 210 are penetrated into the upper column plate 170 and are then exposed to the outside, the upper ends of couplers C are coupled to the lower ends of the upper column reinforcing bars 110 in the box out 150′, while the upper ends of the lower column reinforcing bars 210 exposed to the outside after penetrated into the upper column plate 170 are coupled to the lower ends of the couplers C, thereby connecting the upper column reinforcing bars 110 and the lower column reinforcing bars 210 to each other.
Referring analogically to
Referring analogically to (a) and (b) of
A rigid connection structure of a PC beam 300 using the rigid connection structure between the upper PC column 100 and the lower PC column 200 according to the third embodiment of the present invention includes: the PC beam 300 having beam concrete 330, a beam plate 370 disposed on the side of the beam concrete 330, and a plurality of beam reinforcing bars 310 buriedly arranged vertically in the interior of the beam concrete 330 to maintain the cover thickness of concrete and each having one end connected to the beam plate 370; beam upper reinforcing bars 410 arranged horizontally above the PC beam 300; and slab concrete 430 adapted to be cast on the beam upper reinforcing bars 410 to bury the beam upper reinforcing bars 410 thereinto, wherein the beam plate 370 is coupled to the side of the column concrete 230 of the lower PC column 200, and one end of each beam upper reinforcing bar 410 passes through the box out 150′ and is then coupled to the side of the column concrete 130.
Further, when the beam upper reinforcing bars 410 are coupled to the side of the column concrete 130, the column concrete 130 has connection reinforcing bars 410′ in advance buried thereinto in such a manner as to be coupled to couplers, so that the beam upper reinforcing bars 410 are coupled to the couplers coupled to the connection reinforcing bars 410′.
Furthermore, a level down portion 350 is formed on the upper end of the beam concrete 350 coming into contact with the beam plate 370, so that the upper end of the beam plate 370 is exposed to form an exposed upper plate 372, and the lower end of the beam plate 370 is extended downwardly from the lower end of the beam concrete 330 to form an exposed lower plate 376, so that the exposed upper plate 372 and the exposed lower plate 376 are coupled to the column concrete 230 by means of bolts.
As shown in
Referring analogically to
Referring analogically to
Referring analogically to
Referring analogically to
As mentioned above, moreover, the beam lower reinforcing bar 320 protrudes from the side of the lower portion of the beam concrete 330 in such a manner as to be connected to the connection reinforcing bar 320′ disposed on the side of the lower PC column 200, and the connection reinforcing bar 320′ has one end coupled to the side of the column concrete 230 by means of the buried coupler C′ and the other end coupled to the beam lower reinforcing bar 320 by means of the coupler C.
(a) and (b) of
A rigid connection structure between an upper PC column 100 and a lower PC column 200 according to the third embodiment of the present invention includes: the lower PC column 200 having column concrete 230, a lower column plate 270 disposed on top of the column concrete 230, and a plurality of lower column reinforcing bars 210 buriedly arranged vertically in the interior of the column concrete 230 to maintain the cover thickness of concrete and having upper ends penetrated into the lower column plate 270 in such a manner as to be exposed to the outside; and the upper PC column 100 having column concrete 130, an upper column plate 170 disposed on top of the column concrete 130, and a plurality of upper column reinforcing bars 110 buriedly arranged vertically in the interior of the column concrete 230 to maintain the cover thickness of concrete and having lower ends penetrated into the upper column plate 170 in such a manner as to be exposed to the outside, wherein the column concrete 130 on a portion where the upper column reinforcing bars 110 are exposed forms a box out 150″, without having any contact with the upper column plate 170, and the lower column plate 270 and the upper column plate 170 have protruding portions 272 and 172 extended from the side surfaces thereof, so that the protruding portions 272 of the lower column plate 270 are coupled to the protruding portions 172 of the upper column plate 170 by means of bolts and nuts.
Referring analogically to
The rigid connection structure of the PC beam 300′ using the rigid connection structure between the upper PC column 100 and the lower PC column 200 according to the third embodiment of the present invention includes: the PC beam 300′ having beam concrete 330, a beam plate 370 disposed on the side of the beam concrete 330, a plurality of beam reinforcing bars 310 buriedly arranged vertically in the interior of the beam concrete 330 to maintain the cover thickness of concrete and each having one end connected to the beam plate 370, and a beam bracket 340 having one end connected to the beam plate 370; beam upper reinforcing bars 410 arranged horizontally above the PC beam 300′; and slab concrete 430 adapted to be cast on the beam upper reinforcing bars 410 to bury the beam upper reinforcing bars 410 thereinto, wherein the beam bracket 340 is coupled to a column bracket 240 coupled to the side of the column concrete 230 of the lower PC column 200, and one end of each beam upper reinforcing bar 410 passes through the box out 150 and is then coupled to the side of the column concrete 130.
Further, when the beam upper reinforcing bars 410 are coupled to the side of the column concrete 130, the column concrete 130 has connection reinforcing bars 410′ in advance buried thereinto in such a manner as to be coupled to couplers, so that the beam upper reinforcing bars 410 are coupled to the couplers coupled to the connection reinforcing bars 410′.
Furthermore, a beam lower reinforcing bar 320 protrudes from the side of the lower portion of the beam concrete 330 in such a manner as to be connected to a connection reinforcing bar 320′ disposed on the side of the lower PC column 200.
The connection reinforcing bar 320′ has one end coupled to the side of the column concrete 230 by means of a buried coupler C′ and the other end coupled to the beam lower reinforcing bar 320 by means of a coupler C.
Further, as shown in
Furthermore, as shown in
As shown in (a) and (b) of
Referring analogically to
Further, when the beam upper reinforcing bars 410 are coupled to the side of the column concrete 130, the column concrete 130 has connection reinforcing bars 410′ in advance buried thereinto in such a manner as to be coupled to couplers, so that the beam upper reinforcing bars 410 are coupled to the couplers coupled to the connection reinforcing bars 410′, and a level down portion 350 is formed on the upper end of the beam concrete 350 coming into contact with the beam plate 370, so that the upper end of the beam plate 370 is exposed to form an exposed upper plate 372, and the lower end of the beam plate 370 is extended downwardly from the lower end of the beam concrete 330 to form an exposed lower plate 376, thereby coupling the exposed upper plate 372 and the exposed lower plate 376 to the column concrete 230 by means of bolts.
As shown in (a) and (b) of
As described above, the rigid connection structure between the upper PC column and the lower PC column and the rigid connection structure of the PC beam using the same according to the present invention that improve the column-column connection and the column-beam connection, while performing moment connection, that is, rigid connection, in a dry construction method, thereby enhancing the constructability thereof to allow the rigid connection to be achieved only by the connection of the reinforcing bars before concrete is cast on the connections.
While the present invention has been described with reference to the particular illustrative embodiments, it is not to be restricted by the embodiments but only by the appended claims. It is to be appreciated that those skilled in the art can change or modify the embodiments without departing from the scope and spirit of the present invention.
Number | Date | Country | Kind |
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10-2017-0056276 | May 2017 | KR | national |